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Article

Decision-Making Algorithm with Geographic Mobility for Cognitive Radio

by
Gabriel B. Cervantes-Junco
,
Enrique Rodriguez-Colina
,
Leonardo Palacios-Luengas
,
Michael Pascoe-Chalke
*,
Pedro Lara-Velázquez
and
Ricardo Marcelín-Jiménez
Department of Electrical Engineering, Autonomous Metropolitan University, Iztapalapa, Mexico City 09310, Mexico
*
Author to whom correspondence should be addressed.
Sensors 2024, 24(5), 1540; https://doi.org/10.3390/s24051540
Submission received: 21 August 2023 / Revised: 10 November 2023 / Accepted: 13 November 2023 / Published: 28 February 2024
(This article belongs to the Special Issue Cognitive Radio Networks: Technologies, Challenges and Applications)

Abstract

The proposed novel algorithm named decision-making algorithm with geographic mobility (DMAGM) includes detailed analysis of decision-making for cognitive radio (CR) that considers a multivariable algorithm with geographic mobility (GM). Scarce research work considers the analysis of GM in depth, even though it plays a crucial role to improve communication performance. The DMAGM considerably reduces latency in order to accurately determine the best communication channels and includes GM analysis, which is not addressed in other algorithms found in the literature. The DMAGM was evaluated and validated by simulating a cognitive radio network that comprises a base station (BS), primary users (PUs), and CRs considering random arrivals and disappearance of mobile devices. The proposed algorithm exhibits better performance, through the reduction in latency and computational complexity, than other algorithms used for comparison using 200 channel tests per simulation. The DMAGM significantly reduces the decision-making process from 12.77% to 94.27% compared with ATDDiM, FAHP, AHP, and Dijkstra algorithms in terms of latency reduction. An improved version of the DMAGM is also proposed where feedback of the output is incorporated. This version is named feedback-decision-making algorithm with geographic mobility (FDMAGM), and it shows that a feedback system has the advantage of being able to continually adjust and adapt based on the feedback received. In addition, the feedback version helps to identify and correct problems, which can be beneficial in situations where the quality of communication is critical. Despite the fact that the FDMAGM may take longer than the DMAGM to calculate the best communication channel, constant feedback improves efficiency and effectiveness over time. Both the DMAGM and the FDMAGM improve performance in practical scenarios, the former in terms of latency and the latter in terms of accuracy and stability.
Keywords: cognitive radio; decision-making; geographic mobility in cognitive radio; location; handoff management cognitive radio; decision-making; geographic mobility in cognitive radio; location; handoff management

Share and Cite

MDPI and ACS Style

Cervantes-Junco, G.B.; Rodriguez-Colina, E.; Palacios-Luengas, L.; Pascoe-Chalke, M.; Lara-Velázquez, P.; Marcelín-Jiménez, R. Decision-Making Algorithm with Geographic Mobility for Cognitive Radio. Sensors 2024, 24, 1540. https://doi.org/10.3390/s24051540

AMA Style

Cervantes-Junco GB, Rodriguez-Colina E, Palacios-Luengas L, Pascoe-Chalke M, Lara-Velázquez P, Marcelín-Jiménez R. Decision-Making Algorithm with Geographic Mobility for Cognitive Radio. Sensors. 2024; 24(5):1540. https://doi.org/10.3390/s24051540

Chicago/Turabian Style

Cervantes-Junco, Gabriel B., Enrique Rodriguez-Colina, Leonardo Palacios-Luengas, Michael Pascoe-Chalke, Pedro Lara-Velázquez, and Ricardo Marcelín-Jiménez. 2024. "Decision-Making Algorithm with Geographic Mobility for Cognitive Radio" Sensors 24, no. 5: 1540. https://doi.org/10.3390/s24051540

APA Style

Cervantes-Junco, G. B., Rodriguez-Colina, E., Palacios-Luengas, L., Pascoe-Chalke, M., Lara-Velázquez, P., & Marcelín-Jiménez, R. (2024). Decision-Making Algorithm with Geographic Mobility for Cognitive Radio. Sensors, 24(5), 1540. https://doi.org/10.3390/s24051540

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